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Two-dimensional discriminant locality preserving projections (2DDLPP) and its application to feature extraction via fuzzy set
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  • 作者:Minghua Wan ; Guowei Yang ; Shan Gai ; Zhangjing Yang
  • 关键词:2DDLPP ; Fuzzy set theory ; Feature extraction ; FKNN ; Membership degree
  • 刊名:Multimedia Tools and Applications
  • 出版年:2017
  • 出版时间:January 2017
  • 年:2017
  • 卷:76
  • 期:1
  • 页码:355-371
  • 全文大小:
  • 刊物类别:Computer Science
  • 刊物主题:Multimedia Information Systems; Computer Communication Networks; Data Structures, Cryptology and Information Theory; Special Purpose and Application-Based Systems;
  • 出版者:Springer US
  • ISSN:1573-7721
  • 卷排序:76
文摘
This paper presents a new method for image feature extraction, namely, the fuzzy 2D discriminant locality preserving projections (F2DDLPP) based on the 2D discriminant locality preserving projections (2DDLPP) and fuzzy set theory. Firstly, we calculate the membership degree matrix by fuzzy k-nearest neighbor (FKNN), then we incorporate the membership degree matrix into the definition of the intra-class scatter matrix and inter-class scatter matrix, respectively. Secondly, we can get the fuzzy intra-class scatter matrix and fuzzy inter-class scatter matrix, respectively. The FKNN is implemented to achieve the distribution information of original samples, and this information is utilized to redefine corresponding scatter matrices. So, F2DDLPP can extract discriminative features from overlapping (outlier) samples which is different to the conventional 2DDLPP. Finally, Experiments on the Yale, ORL face databases, USPS database and PolyU palmprint database are demonstrated to verify the effectiveness of the proposed algorithm.

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